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Interferometric biosensing platform for multiplexed digital detection of viral pathogens and biomarkers.

机译:干涉式生物传感平台,用于病毒病原体和生物标志物的多重数字检测。

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摘要

Label-free optical biosensors have been established as proven tools for monitoring specific biomolecular interactions. However, compact and robust embodiments of such instruments have yet to be introduced in order to provide sensitive, quantitative, and high-throughput biosensing for low-cost research and clinical applications. Here we present the interferometric reflectance-imaging sensor (IRIS). IRIS allows sensitive label free analysis using an inexpensive and durable multi-color LED illumination source on a silicon based surface. IRIS monitors biomolecular interaction through measurement of biomass addition to the sensor's surface. We demonstrate the capability of this system to dynamically monitor antigen---antibody interactions with a noise floor of 5.2 pg/mm 2 and DNA single mismatch detection under isothermal melting conditions in an array format.;Ensemble detection of binding events using IRIS did not provide the sensitivity needed for detection of infectious disease and biomarkers at clinically relevant concentrations. Therefore, a new approach was adapted to the IRIS platform that allowed the detection and identification of individual nanoparticles on the sensor's surface. The new detection method was termed single-particle IRIS (SP-IRIS). We developed two detection modalities for SP-IRIS. The first modality is when the target is a nanoparticle such as a virus. We verified that SP-IRIS can accurately detect and size individual viral particles. Then we demonstrated that single nanoparticle counting and sizing methodology on SP-IRIS leads to a specific and sensitive virus sensor that can be multiplexed. Finally, we developed an assay for the detection of Ebola and Marburg. A detection limit of 3 x 103 PFU/ml was demonstrated for vesicular stomatitis virus (VSV) pseudotyped with Ebola or Marburg virus glycoprotein. We have demonstrated that virus detection can be done in human whole blood directly without the need for sample preparation. The second modality of SP-IRIS we developed was single molecule counting of biomarkers utilizing a sandwich assay with detection probes labeled with gold nanoparticles. We demonstrated the use of single molecule counting in a nucleic acid assay for melanoma biomarker detection. We showed that a single molecule counting assay can lead to detection limits in the attomolar range. The improved sensitivity of IRIS utilizing single nanoparticle detection holds promise for a simple and low-cost technology for rapid virus detection and multiplexed molecular screening for clinical applications.
机译:无标签光学生物传感器已被确立为监测特定生物分子相互作用的可靠工具。然而,尚未引入此类仪器的紧凑且坚固的实施例,以便为低成本的研究和临床应用提供灵敏,定量和高通量的生物传感。在这里,我们介绍了干涉反射率成像传感器(IRIS)。 IRIS可以在硅基表面上使用廉价耐用的多色LED照明源进行敏感的无标签分析。 IRIS通过测量传感器表面添加的生物质来监控生物分子的相互作用。我们证明了该系统具有动态监测抗原-抗体相互作用的能力,本底噪声为5.2 pg / mm 2并在等温融解条件下以阵列格式检测DNA单个错配;结合使用IRIS进行结合事件检测提供临床相关浓度下检测传染病和生物标志物所需的灵敏度。因此,一种新方法适用于IRIS平台,该平台允许检测和识别传感器表面上的单个纳米颗粒。新的检测方法称为单粒子IRIS(SP-IRIS)。我们为SP-IRIS开发了两种检测方式。第一种方式是当目标是纳米粒子(例如病毒)时。我们验证了SP-IRIS可以准确地检测单个病毒颗粒并确定其大小。然后,我们证明了SP-IRIS上的单个纳米粒子计数和大小确定方法会导致可以复用的特定且敏感的病毒传感器。最后,我们开发了一种用于检测埃博拉和马尔堡的检测方法。用埃博拉病毒或马尔堡病毒糖蛋白假型化的水疱性口炎病毒(VSV)的检出限为3 x 103 PFU / ml。我们已经证明可以直接在人全血中进行病毒检测,而无需样品制备。我们开发的SP-IRIS的第二种形式是利用三明治试验和金纳米颗粒标记的检测探针对生物标志物进行单分子计数。我们证明了在黑色素瘤生物标志物检测的核酸检测中使用单分子计数。我们证明了单分子计数测定法可导致在阿摩尔范围内的检测极限。利用单个纳米粒子检测提高IRIS的灵敏度,有望为临床应用提供一种简单,低成本的技术,用于快速病毒检测和多分子筛查。

著录项

  • 作者

    Daaboul, George.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Nanotechnology.;Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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